Bi-Sb Nanocrystals Embedded in Phosphorus as High-Performance Potassium Ion Battery Electrodes

被引:121
作者
Chen, Kuan-Ting [1 ]
Tuan, Hsing-Yu [1 ]
机构
[1] Natl Tsing Hua Univ, Dept Chem Engn, Hsinchu 30013, Taiwan
关键词
potassium; battery; phosphorus; nanotechnology; nanocrystals; HIGH-CAPACITY; LITHIUM-ION; ANODES; NANOPARTICLES; STORAGE; PHOSPHIDE;
D O I
10.1021/acsnano.0c04203
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The development of high-performance potassium ion battery (KIB) electrodes requires a nanoengineering design aimed at optimizing the construction of active material/buffer material nanocomposites. These nanocomposites will alleviate the stress resulting from large volume changes induced by K+ ion insertion/extraction and enhance the electrical and ion conductivity. We report the synthesis of phosphorus-embedded ultrasmall bismuth-antimony nanocrystals (BixSb1-x@P, (0 <= x <= 1)) for KIB anodes via a facile solution precipitation at room temperature. BixSb1-x@P nanocomposites can enhance potassiation-depotassiation reactions with K(+ )ions, owing to several attributes. First, by adjusting the feed ratios of the Bi/Sb reactants, the composition of BixSb1-x nanocrystals can be systematically tuned for the best KIB anode performance. Second, extremely small (diameter approximate to 3 nm) BixSb1-x nanocrystals were obtained after cycling and were fixed firmly inside the P matrix. These nanocrystals were effective in buffering the large volume change and preventing the collapse of the electrode. Third, the P matrix served as a good medium for both electron and K+ ion transport to enable rapid charge and discharge processes. Fourth, thin and stable solid electrolyte interface (SEI) layers that formed on the surface of the cycled BixSb1-x@P electrodes resulted in low resistance of the overall battery electrode. Lastly, in situ X-ray diffraction analysis of K+ ion insertion/extraction into/from the BxSb1-x@P electrodes revealed that the potassium storage mechanism involves a simple, direct, and reversible reaction pathway: (Bi, Sb) <-> K(Bi, Sb) <-> K-3(Bi, Sb). Therefore, electrodes with the optimized composition, i.e., Bi0.5Sb0.5@P, exhibited excellent electrochemical performance (in terms of specific capacity, rate capacities, and cycling stability) as KIB anodes. Bi0.5Sb0.5@P anodes retained specific capacities of 295.4 mA h g(-1) at 500 mA g(-1) and 339.1 mA h g(-1) at 1 A g(-1) after 800 and 550 cycles, respectively. Furthermore, a capacity of 258.5 mA h g(-1) even at 6.5 A g(-1) revealed the outstanding rate capability of the Sb-based KIB anodes. Proof-of-concept KIBs utilizing Bi0.5Sb0.5@P as an anode and PTCDA (perylenetetracarboxylic dianhydride) as a cathode were used to demonstrate the applicability of Bi0.5Sb0.5@P electrodes to full cells. This study shows that BixSb1-x@P nanocomposites are promising carbon-free anode materials for KIB anodes and are readily compatible with the commercial slurry-coating process applied in the battery manufacturing industry.
引用
收藏
页码:11648 / 11661
页数:14
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共 61 条
  • [1] Preparation and characterization of a material of composition BiP (bismuth phosphide) and other intergroup 15 element phases
    Allen, GC
    Carmalt, CJ
    Cowley, AH
    Hector, AL
    Kamepalli, S
    Lawson, YG
    Norman, NC
    Parkin, IP
    Pickard, LK
    [J]. CHEMISTRY OF MATERIALS, 1997, 9 (06) : 1385 - 1392
  • [2] Porosity- and Graphitization-Controlled Fabrication of Nanoporous Silicon@Carbon for Lithium Storage and Its Conjugation with MXene for Lithium-Metal Anode
    An, Yongling
    Tian, Yuan
    Wei, Hao
    Xi, Baojuan
    Xiong, Shenglin
    Feng, Jinkui
    Qian, Yitai
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2020, 30 (09)
  • [3] Micron-Sized Nanoporous Antimony with Tunable Porosity for High-Performance Potassium-Ion Batteries
    An, Yongling
    Tian, Yuan
    Ci, Lijie
    Xiong, Shenglin
    Feng, Jinkui
    Qian, Yitai
    [J]. ACS NANO, 2018, 12 (12) : 12932 - 12940
  • [4] Bharadwaj S., 2020, POTASSIUM ION BATTER, P19
  • [5] Flexible Antimony@Carbon Integrated Anode for High-Performance Potassium-Ion Battery
    Cao, Kangzhe
    Liu, Huiqiao
    Jia, Yongheng
    Zhang, Zhang
    Jiang, Yong
    Liu, Xiaogang
    Huang, Ke-Jing
    Jiao, Lifang
    [J]. ADVANCED MATERIALS TECHNOLOGIES, 2020, 5 (06)
  • [6] Hierarchical chrysanthemum-like MoS2/Sb heterostructure encapsulated into N-doped graphene framework for superior potassium-ion storage
    Cao, Liang
    Zhang, Bao
    Xia, Haifeng
    Wang, Chunhui
    Luo, Bi
    Fan, Xinming
    Zhang, Jiafeng
    Ou, Xing
    [J]. CHEMICAL ENGINEERING JOURNAL, 2020, 387
  • [7] Red Phosphorus Potassium-Ion Battery Anodes
    Chang, Wei-Chung
    Wu, Jen-Hsuan
    Chen, Kuan-Ting
    Tuan, Hsing-Yu
    [J]. ADVANCED SCIENCE, 2019, 6 (09)
  • [8] Solution Synthesis of Iodine-Doped Red Phosphorus Nanoparticles for Lithium-Ion Battery Anodes
    Chang, Wei-Chung
    Tseng, Kuan-Wei
    Tuan, Hsing-Yu
    [J]. NANO LETTERS, 2017, 17 (02) : 1240 - 1247
  • [9] Organic electrode for non-aqueous potassium-ion batteries
    Chen, Yanan
    Luo, Wei
    Carter, Marcus
    Zhou, Lihui
    Dai, Jiaqi
    Fu, Kun
    Lacey, Steven
    Li, Tian
    Wan, Jiayu
    Han, Xiaogang
    Bao, Yanping
    Hu, Liangbing
    [J]. NANO ENERGY, 2015, 18 : 205 - 211
  • [10] Sb-MOFs derived Sb nanoparticles@porous carbon for high performance potassium-ion batteries anode
    Cheng, Na
    Zhao, Jianguo
    Fan, Ling
    Liu, Zhaomeng
    Chen, Suhua
    Ding, Hongbo
    Yu, Xinzhi
    Liu, Zhigang
    Lu, Bingan
    [J]. CHEMICAL COMMUNICATIONS, 2019, 55 (83) : 12511 - 12514